Test pricing strategies with synthetic data. Use when: simulating willingness to pay, price sensitivity, or optimal price points.
npx skills add https://github.com/indranilbanerjee/digital-marketing-pro --skill pricing-test
Test pricing scenarios against synthetic audience panels grounded in real CRM data. Estimate willingness-to-pay by segment, find optimal price points, acceptable price ranges, and the spread between revenue-maximizing and volume-maximizing prices. This command brings Van Westendorp and Gabor-Granger style pricing analysis to AI-simulated panels — giving directional pricing intelligence without the cost and lead time of formal pricing research. Use it before launching a new product, adjusting existing pricing, introducing tiers, or evaluating competitive price positioning. Every output includes confidence limitations so results are treated as informed estimates requiring real-world validation for high-stakes pricing decisions.
The user must provide (or will be prompted for):
~/.claude-marketing/brands/_active-brand.json for the active slug, then load ~/.claude-marketing/brands/{slug}/profile.json. Apply brand positioning, perceived brand premium or discount, target market income and spending profiles, and competitive landscape. Also check for guidelines at ~/.claude-marketing/brands/{slug}/guidelines/_manifest.json — if present, load restrictions. Check for agency SOPs at ~/.claude-marketing/sops/. If no brand exists, ask: "Set up a brand first (/digital-marketing-pro:brand-setup)?" — or proceed with defaults.python "${CLAUDE_PLUGIN_ROOT}/scripts/audience-simulator.py" --brand {slug} --action list-panels), or create a new panel via python "${CLAUDE_PLUGIN_ROOT}/scripts/audience-simulator.py" --brand {slug} --action create-panel --panel-name {name} --segments '[...]' with CRM data grounding if new segment definitions were provided. Ensure segments include spending behavior and price sensitivity indicators from CRM purchase history.python "${CLAUDE_PLUGIN_ROOT}/scripts/audience-simulator.py" --brand {slug} --action test-pricing --panel-id {id} --price-points '[...]' --product-description "..." for each price point against each segment. For every segment-price combination, estimate purchase likelihood, perceived value rating, price-quality inference (too cheap signals low quality, too expensive signals exclusion), and emotional response (excited about value, comfortable, hesitant, or rejected).A structured pricing analysis containing:
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Take indranilbanerjee/pricing-test from the repository into ~/.claude/skills for personal
use, or into .claude/skills inside a project.
The agent identifies a skill by the name field in its header. Two skills with the
same name cannot sit side by side — one of them will be ignored.